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Title: Restoring freshwater habitat mosaics to promote resilience of vulnerable salmon populations

Journal Article · · Ecosphere
DOI: https://doi.org/10.1002/ecs2.4803 · OSTI ID:2446780
ORCiD logo [1]; ORCiD logo [2]; ORCiD logo [3]; ORCiD logo [4]; ORCiD logo [5];  [5];  [6]; ORCiD logo [5]; ORCiD logo [7]
  1. University of California Santa Cruz, CA (United States); National Oceanic and Atmospheric Administration, Santa Cruz, CA (United States)
  2. The Metropolitan Water District of Southern California, Sacramento, CA (United States)
  3. University of Essex, Colchester (United Kingdom)
  4. University of California Santa Cruz, CA (United States); Norwegian Institute for Nature Research, Trondheim (Norway)
  5. University of California, Davis, CA (United States)
  6. Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)
  7. National Oceanic and Atmospheric Administration, Santa Cruz, CA (United States); University of California, Davis, CA (United States)

Phenotypic diversity and abundance drive salmon resilience in the face of increasing environmental variability. But what happens when human activities fundamentally alter the habitat complexity that drives this diversity? And how can we restore habitats to recover both diversity and abundance to support salmon persistence in a warming climate? Here, we looked at the impact of a large watershed restoration effort on the abundance and climate resilience of the three remaining core natural spring-run Chinook Salmon populations in the California Central Valley (Butte, Mill, and Deer Creek). Butte Creek fish, which have floodplain access, had higher overall productivity and faster juvenile growth compared with Mill and Deer Creek populations, and the proportion of floodplain inundation was positively correlated with Butte Creek adult abundance two years later. While Butte Creek exhibited significant increases in abundance post-restoration (~2000%), it generally exhibited lower phenotypic diversity and only a marginal increase in population stability after restoration based on the coefficient of variation (CV). In particular, Butte Creek salmon tended to exhibit larger drops in escapement following dry years (e.g., return years 2010, 2017) compared with Mill and Deer Creek populations, presumably due to limited inundation of its downstream floodplain. The late-migrating juvenile strategy (i.e., yearling), which disproportionately supported Mill and Deer Creek populations during droughts, was uncommon among Butte Creek adults (averaging 60% of returns for Mill and Deer Creek vs. 0.3% for Butte Creek). Increased spring-run stock complex stability was found, post-restoration, when combining the three spring-run populations (i.e., lower aggregate CV). However, among-river pairwise correlations also suggested increased synchronization in population abundances post-restoration, potentially due to increasing frequency and severity of extreme climatic events (e.g., droughts and ocean warming). This study underscores the importance of restoring a connected mosaic of aquatic habitats across modified landscapes, such as cold water refugia and floodplains, to preserve multiple (across-population) life history pathways for increasing salmon stock complex stability and abundance. These landscape-scale process-based habitat restoration efforts are likely to be crucial for the successful long-term recovery of vulnerable species in a rapidly changing climate.

Research Organization:
Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)
Sponsoring Organization:
USDOE National Nuclear Security Administration (NNSA)
Grant/Contract Number:
AC52-07NA27344
OSTI ID:
2446780
Report Number(s):
LLNL--JRNL-851129; 1077507
Journal Information:
Ecosphere, Journal Name: Ecosphere Journal Issue: 3 Vol. 15; ISSN 2150-8925
Publisher:
WileyCopyright Statement
Country of Publication:
United States
Language:
English

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